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So here's my problem:

I have successfully parsed a text file with line indention level in to a list like:

A = [[1,'a'],[1,'b'],[2,'c'],[2,'d'],[1,'e'],[2,'f']]

Each element in list A is a list of length 2. Each element corresponds to a line read from the text file. A[x][0] is the indent level of the line in the text file, A[x][1] is the content of the line where x is the index of any element in A.

For e.g. A[1] = [1,'b'] where 1 is the indent level and 'b' is the line text. A[2] and A[3] are children of A[1] i.e. sub indented lines.

I am trying to get an output list which will be in the following format:

B = [['a'],['b',['c','d']],['e',['f']]]

This way when I iterate over B[x][0] I will get only the first level indented items and be able to recursively go to each element.

The algorithm should be able to handle infinite depth i.e if A[3] was followed by element [3,'z'] it should be a nested list of A[3].

I have explored some other posts that solve a similar problem and use itertools.groupby but unfortunately haven't been able to understand them enough to be able to apply it to my problem.

Really appreciate your help folks!

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2  
Why is 'b' in a sublist, although it's on the same level as 'a'? Why isn't 'd' in its own sublist then? Could you clarify the rules? –  Lev Levitsky Dec 29 '12 at 11:05
    
-a -b --c --d -e --f So c and d are relevant to b and f is relevant to e. The root list will only contain elements from level 1 i.e. a, b and e but since b and e have children, they need to be if b i added as an element of the root list, the relationship with the children will be lost –  smartexpert Dec 29 '12 at 11:16
3  
It won't be lost: in ['a', 'b', ['c', 'd'], 'e', ['f']] each sublist is "relevant" to the previous element. –  Lev Levitsky Dec 29 '12 at 11:21

2 Answers 2

up vote 0 down vote accepted

Try this simple stack-based algorithm:

A = [[1,'a'],[1,'b'],[2,'c'],[2,'d'],[1,'e'],[2,'f']]
stack = [ [] ]
for level, item in A:
    while len(stack) > level:
        stack.pop()
    while len(stack) <= level:
        node = (item, [])
        stack[-1].append(node)
        stack.append(node[1])

result = stack[0]

This creates a structure like:

[('a', []), ('b', [('c', []), ('d', [])]), ('e', [('f', [])])]

which, IMO, is more convenient to work with, but it should be no problem to convert it to yours if needed:

def convert(lst):
    return [ [x, convert(y)] if y else x for x, y in lst]

result = convert(stack[0])
print result
# ['a', ['b', ['c', 'd']], ['e', ['f']]]
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A = [[1,'a'],[3,'b']] isn't working properly. Changing line node = (item, []) with node = ((item if len(stack) == level else None), []) repairs it. –  Ante Dec 29 '12 at 14:01
    
thanks! this is pretty much what I wanted to go for. How can we get the output without the empty lists? –  smartexpert Dec 29 '12 at 19:07
    
@smartexpert: see the update –  georg Dec 29 '12 at 22:20

Recursive solution, method returns formated list for a part of an input list that is for and below given level. Format is like Lev described, since it is consistent. Note: method destructs input list.

A = [[1,'a'],[1,'b'],[2,'c'],[2,'d'],[4,'x'],[5,'y'],[1,'e'],[2,'f']]

def proc_indent(level, input_list):
  if not input_list or level > input_list[0][0]:
    return None
  this_level = input_list.pop(0)[1] if level == input_list[0][0] else None
  up_levels = []
  while True:
    r = proc_indent(level+1, input_list)
    if r is None:
      break
    up_levels.append( r )
  if not up_levels:
    return [this_level]
  up_levels = [i for u in up_levels for i in u]
  return [this_level, up_levels] if this_level else [up_levels]

print proc_indent(0, list(A))  # copy list, since it is destructed in a recursion
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